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首页> 外文期刊>ACS nano >Photocontrollable Probe Spatiotemporally Induces Neurotoxic Fibrillar Aggregates and Impairs Nucleocytoplasmic Trafficking
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Photocontrollable Probe Spatiotemporally Induces Neurotoxic Fibrillar Aggregates and Impairs Nucleocytoplasmic Trafficking

机译:可光可解变的探针瞬间诱导神经毒性纤维素聚集体并损害核细胞形成贩运

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The abnormal assembly of misfolded proteins into neurotoxic aggregates is the hallmark associated with neurodegenerative diseases. Herein, we establish a photocontrollable platform to trigger amyloidogenesis to recapitulate the pathogenesis of amyotrophic lateral sclerosis (ALS) by applying a chemically engineered probe as a "switch" in live cells. This probe is composed of an amyloidogenic peptide from TDP-43, a photolabile linker, a polycationic sequence both to mask amyloidogenicity and for cell penetration, and a fluorophore for visualization. The photocontrollable probe can self-assemble into a spherical vesicle but rapidly develops massive nanofibrils with amyloid properties upon photo activation. The photoinduced in vitro fibrillization process is characterized by biophysical techniques. In cellular experiments, this cell-penetrable vesicle was retained in the cytoplasm, seeded the mislocalized endogenous TDP-43 into aggregates upon irradiation, and consequently initiated apoptosis. In addition, this photocontrollable vesicle interfered with nucleocytoplasmic protein transport and triggered cortical neuron degeneration. Our developed strategy provides in vitro and in vivo spatiotemporal control of neurotoxic fibrillar aggregate formation, which can be readily applied in the studies of protein misfolding, aggregation-induced protein mislocalization, and amyloid-induced pathogenesis in different diseases.
机译:错误折叠蛋白质进入神经毒性聚集体的异常组装是与神经变性疾病相关的标志。在此,我们建立光可解变的平台以触发淀粉样活性,通过在活细胞中施加化学工程化探针作为“开关”来重新携带肌营养侧面硬化剂(ALS)的发病机制。该探针由来自TDP-43的淀粉样蛋白肽,光图连接物,用于掩模淀粉样膜的聚阳离子序列和细胞穿透,以及用于可视化的荧光团。可光可解持的探针可以自组装成球形囊泡,但在光活化时迅速地在淀粉样蛋白特性上发育巨大的纳米纤维。通过生物物理技术的特征在体外原纤化工艺的光致。在细胞实验中,将该细胞渗透囊泡保留在细胞质中,将错误固定的内源TDP-43接种到辐射后聚集体,并因此引发了凋亡。此外,这种可光可解变的囊泡干扰了核细胞质蛋白转运和触发皮质神经元变性。我们发达的策略提供了体外和体内天空血管生长素体的体外控制,可容易地应用于蛋白质错误折叠,聚集诱导的蛋白质错误分子化和淀粉样蛋白诱导的不同疾病的发病机制的研究。

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